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I fixed a broken spoke!

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Road Cycling
Published
4 December 2006
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dgk
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  1. Quoted message said:

    You may be missing where things change.

    Push a brake pad so that it touches the rim next to a spoke

    Squeeze the spoke pair.

    I get a sideways movement of about 6 mm on a front wheel, using my
    weaker hand.

    Now look at the spoke crossing, where a typical cross-3 spoke goes
    around another spoke near the hub at about 4 degrees.

    How much does the crossing change when you squeeze the spoke pair?

    The ~ 4 degree angle should flatten a bit, but I won't try to guess how
    much. My crossing point moved about 10 mm.

    In short, the spoke on a typical cross-3 wheel is already going around
    a bend. When I squeeze mine, the spoke moves up to 10 mm along the
    spoke that it crosses to a new position (and a new counter-tension from
    the other spoke).

    Meanwhile, the rim at the other end of the spoke moves up to 6 mm
    sideways.

    The rim also pulls inward some distance (much smaller, I think, but
    still exaggerating the "calculated" tension).

    Quoted message said:

    Is the squeeze force on the bicycle spoke pair centered relative to the
    hub and rim, or to the crossing point and rim? Where does the rim end
    up? How far does the crossing flatten? How far does the crossing point
    move?

    Fortunately, with "calculations" and "theory" (scary, I know), we can
    determine the size of these possible error sources and decide whether
    they have much of an effect.

    If you are so clumsy that you mis-measure the center of a spoke span by
    10%, (roughly 0.5" in 10" -- really bad ruler!), then your calculated
    tension will be off proportionally -- (10%).

    The "sideways" deflection of 6mm on 270mm corresponds to an angle of
    1.3deg, or a change in spoke path length of 0.02%.

    Complete "flattening" of the ~4deg crossover bend likewise would result
    in a path length change of ~0.2%.

    Movement of the crossover would make a very small change to the tension.
    If the movement (inward) is ~10mm, ~75mm from the hub, the change
    crossover bend induced tension is an increase of ~15%. At a 4deg angle,
    the ratio of tension increase to force (t = f/2sin(theta)) is about 6,
    so if the crossover contact force was 10lb (a high estimate, I think),
    the associated tension would be 60lb, and the change from crossover
    point movement would be about 10lb (increase).

    As to the issue of the rim pulling "inward", that principally determines
    the ratio of squeeze force to tension increase (deflection angle), but
    it does not affect the calculation of tension as I (Jobst and Ron) have
    tried to explain.

  2. Peter Cole said:
    jim beam said:

    er, i has a passing acquaintance with pythagoras, thanks. in case you
    missed my posting to ron, imagine this:

    [fixed width font]

    v
    concrete|---------|concrete

    and
    v
    |--------------------|
    | |
    | |
    | |<thin flexy pole
    | |
    //////////////////////////

    now, which one do /you/ think is doing to show the greatest tension
    increase when deflecting the wire at point "v"? by all means, feel
    free to use pythaoras to explain.

    I didn't miss your post to Ron (I'm enjoying this too much), but you
    continue to miss the point.

    The question isn't which one of your scenarios has more tension, but
    rather whether you can precisely determine the wire tension just from
    the deflection angle and deflection force identically in both cases.

    If you're still confused, try a checking an entry-level physics textbook.

    ok peter, now you're being deliberately obtuse. fact: if the two
    anchors are not fixed, deflection is not simply a function of tension,
    it's a function of how far the anchors move - try the above
    demonstration yourself.

  3. Peter Cole said:
    Quoted message said:

    You may be missing where things change.

    Push a brake pad so that it touches the rim next to a spoke

    Squeeze the spoke pair.

    I get a sideways movement of about 6 mm on a front wheel, using my
    weaker hand.

    Now look at the spoke crossing, where a typical cross-3 spoke goes
    around another spoke near the hub at about 4 degrees.

    How much does the crossing change when you squeeze the spoke pair?

    The ~ 4 degree angle should flatten a bit, but I won't try to guess how
    much. My crossing point moved about 10 mm.

    In short, the spoke on a typical cross-3 wheel is already going around
    a bend. When I squeeze mine, the spoke moves up to 10 mm along the
    spoke that it crosses to a new position (and a new counter-tension from
    the other spoke).

    Meanwhile, the rim at the other end of the spoke moves up to 6 mm
    sideways.

    The rim also pulls inward some distance (much smaller, I think, but
    still exaggerating the "calculated" tension).

    Quoted message said:

    Is the squeeze force on the bicycle spoke pair centered relative to the
    hub and rim, or to the crossing point and rim? Where does the rim end
    up? How far does the crossing flatten? How far does the crossing point
    move?

    Fortunately, with "calculations" and "theory" (scary, I know), we can
    determine the size of these possible error sources and decide whether
    they have much of an effect.

    If you are so clumsy that you mis-measure the center of a spoke span by
    10%, (roughly 0.5" in 10" -- really bad ruler!), then your calculated
    tension will be off proportionally -- (10%).

    mockery doesn't make you right here peter.

    Quoted message said:


    The "sideways" deflection of 6mm on 270mm corresponds to an angle of
    1.3deg, or a change in spoke path length of 0.02%.

    and rim elasticity is how many times greater than that?

    Quoted message said:


    Complete "flattening" of the ~4deg crossover bend likewise would result
    in a path length change of ~0.2%.

    calculated, not measured.

    Quoted message said:


    Movement of the crossover would make a very small change to the tension.
    If the movement (inward) is ~10mm, ~75mm from the hub, the change
    crossover bend induced tension is an increase of ~15%. At a 4deg angle,
    the ratio of tension increase to force (t = f/2sin(theta)) is about 6,
    so if the crossover contact force was 10lb (a high estimate, I think),
    the associated tension would be 60lb, and the change from crossover
    point movement would be about 10lb (increase).

    As to the issue of the rim pulling "inward", that principally determines
    the ratio of squeeze force to tension increase (deflection angle), but
    it does not affect the calculation of tension as I (Jobst and Ron) have
    tried to explain.


    no, you're dismissing the very crux of the argument against you as
    though it doesn't count - you're not explaining the difference between
    calculated and actual tension difference. /you/ need to measure. /you/
    need to explain discrepancy, and /not/ with some hand waving about
    "clumsy mis-measurement". you've already been told what it is - how
    much more simple does it need to be made until you get it?

  4. jim beam said:

    Peter Cole wrote:

    Quoted message said:
    Quoted message said:

    The question isn't which one of your scenarios has more tension, but
    rather whether you can precisely determine the wire tension just from
    the deflection angle and deflection force identically in both cases.

    If you're still confused, try a checking an entry-level physics textbook.

    ok peter, now you're being deliberately obtuse. fact: if the two
    anchors are not fixed, deflection is not simply a function of tension,
    it's a function of how far the anchors move - try the above
    demonstration yourself.

    I didn't say "deflection is a function of tension", I said deflection
    angle gives the ratio of forces -- a very different statement.

    Apparently you haven't ever studied vectors. How could you grasp
    material science without them? Even so, I thought the rough idea would
    be intuitive, I guess not.

    Entry level textbooks are full of this kind of "rope and weight" problem
    simply because the vectors are so easily revealed by the rope paths.
    There can be no confusion about the direction of force, it's only left
    to work out the magnitude.

    It comes down to simple trig, which is where Pythagoras comes in.

    BTW, "obtuse" has two possible meanings in this context:

    a : lacking sharpness or quickness of sensibility or intellect :
    INSENSITIVE, STUPID

    b : difficult to comprehend : not clear or precise in thought or expression

    I wouldn't be so quick to use that word if I were you.

  5. In article
    <[email hidden]>,

    Ron Ruff said:

    I don't know if the Park tensiometer is any good but I picked one up
    from Performance when they were having their $20 off $50 with free
    shipping sale, and I'm having fun with it. It seems to be pretty
    consistent at least, if not very precise...

    Consistent and precise mean much the same thing.

    Quoted message said:

    ie a single digit on the
    scale can represent a 4 to 20 kg variation in tension. The force it
    exerts on the spoke is not that small either... considering that it
    takes ~3lb to squeeze the handle and a leverage ratio of ~8 to 1 gives
    a force of ~24lb. Supposedly their conversion table compensates for
    this...

    You think that it may not be as _accurate_ as the scale
    allows.

    A clock that reads the correct time within a certain
    bound is accurate to that bound. A clock whose
    oscillator measures the same interval to within a
    certain bound is precise to that bound. The oscillator
    may have little twitches & anomalies; diurnal
    variations; sensitivity to barometric pressure,
    temperature, and humidity that overall add up to little
    variation making the clock accurate for time telling,
    but poor as a frequency standard. A clock may have a
    very precise oscillator that does not oscillate at the
    design frequency, making it a poor instrument for
    telling time.

    --
    Michael Press

  6. In article <[email hidden]>,

    Michael Press said:

    In article <[email hidden]>,

    Ron Ruff said:

    I don't know if the Park tensiometer is any good but I picked one
    up from Performance when they were having their $20 off $50 with
    free shipping sale, and I'm having fun with it. It seems to be
    pretty consistent at least, if not very precise...

    Consistent and precise mean much the same thing.

    Hardly, and neither necessarily mean accurate.

  7. Michael Press said:

    In article
    <[email hidden]>,

    Ron Ruff said:

    I don't know if the Park tensiometer is any good but I picked one up
    from Performance when they were having their $20 off $50 with free
    shipping sale, and I'm having fun with it. It seems to be pretty
    consistent at least, if not very precise...

    Consistent and precise mean much the same thing.

    Quoted message said:

    ie a single digit on the
    scale can represent a 4 to 20 kg variation in tension. The force it
    exerts on the spoke is not that small either... considering that it
    takes ~3lb to squeeze the handle and a leverage ratio of ~8 to 1 gives
    a force of ~24lb. Supposedly their conversion table compensates for
    this...

    You think that it may not be as _accurate_ as the scale
    allows.

    A clock that reads the correct time within a certain
    bound is accurate to that bound. A clock whose
    oscillator measures the same interval to within a
    certain bound is precise to that bound. The oscillator
    may have little twitches & anomalies; diurnal
    variations; sensitivity to barometric pressure,
    temperature, and humidity that overall add up to little
    variation making the clock accurate for time telling,
    but poor as a frequency standard. A clock may have a
    very precise oscillator that does not oscillate at the
    design frequency, making it a poor instrument for
    telling time.

    A clock with no oscillator at all is still accurate twice a day.

    dl

  8. Michael Press said:


    Consistent and precise mean much the same thing.

    I think I understand your point. If the device was very consistent,
    then it would be very precise... and with perfect calibration, very
    accurate. But what I meant in this case is that it is consistent given
    the lack of precision in reading it's scale. In other words I can get a
    reading of 21.5 on the same spoke +- ~.25, or 116kg +-3kg... and I
    think trying to read better than +-.25 on the scale would be difficult
    anyway.

    BTW, the biggest problem I have with the Park is the lack of *contrast*
    on the scale, since it is simply lines cut into the aluminum plate
    which is then anodized all the same color. It is difficult to read
    unless the lighting is good, you have good eyesight, and are looking
    straight at it. A scale with contrasting black on white would be a lot
    better...

  9. On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>

    Quoted message said:


    Michael Press said:


    Consistent and precise mean much the same thing.

    I think I understand your point. If the device was very consistent,
    then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

  10. In article
    <[email hidden]>,

    Quoted message said:

    On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>

    Quoted message said:


    Michael Press said:


    Consistent and precise mean much the same thing.

    I think I understand your point. If the device was very consistent,
    then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

    What is consistency in a laboratory?

    Precision is getting the same value each time you
    measure the same thing.

    --
    Michael Press

  11. In article <[email hidden]>,

    Michael Press said:

    In article
    <[email hidden]>,

    Quoted message said:

    On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>

    Quoted message said:


    Michael Press wrote:
    >
    > Consistent and precise mean much the same thing.

    I think I understand your point. If the device was very consistent,
    then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

    What is consistency in a laboratory?

    Precision is getting the same value each time you
    measure the same thing.

    That sounds to me more like a definition of consistency.

    Precision, as I learned about it, has to do with "degrees
    of accuracy," taking into consideration such things as
    the effects of multiplication and division on error,
    significant digits, rounding, and irrational numbers.

    Precision doesn't need to be any finer than the practical
    demands of what it's applied to, so precision is relative
    and arbitrary. "False precision" (e.g: use of insignificant
    digits) is a waste of time and effort.

    cheers,
    Tom

    --
    Nothing is safe from me.
    Above address is just a spam midden.
    I'm really at: tkeats curlicue vcn dot bc dot ca

  12. On Sat, 30 Dec 2006 05:14:19 GMT, Michael Press <[email hidden]>

    Quoted message said:

    In article
    <[email hidden]>,

    Quoted message said:

    On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>

    Quoted message said:


    Michael Press wrote:
    >
    > Consistent and precise mean much the same thing.

    I think I understand your point. If the device was very consistent,
    then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

    What is consistency in a laboratory?

    Precision is getting the same value each time you
    measure the same thing.

    No, that's consistency.

    Precision is a different thing.

    As is accuracy.

    (shakes head and mutters 'what are they teaching these young pups
    today...'😉

  13. On Tue, 19 Dec 2006 08:18:44 -0600, Gary Young <[email hidden]>

    Quoted message said:
    jim beam said:
    dvt said:

    jim beam wrote:
    > dvt wrote:
    >> jim beam wrote:
    >>> but given that the hub flanges are canted and that the angle which
    >>> the spoke manufacturer already provides is already appropriate,
    >>> there's no point in this exercise in the first place.

    >> You never answered this question the first time, so let's try again...

    > dave, some threads get too long and windy. if you want to /ensure/ i
    > read a question that's somehow important, post a new thread. and make
    > sure i'm not on vacation, traveling, otherwise busy or disinterested.

    Nice try, jim. Here's the record:

    <http://groups.google.com/group/rec.bicycles.tech/browse_frm/thread/1c072f5d8b7c8892/83a78e954c0f932d>

    is this the 'unanswered' question?
    "I've been watching this thread, hoping that I wasn't the only one with
    this question. How do you "cant and drill" a hole in the hub flange so
    that both inbound *and* outbound spokes are "optimized?" If the hole was
    so canted, would that mean that the hubs should not be deformed during
    the build?"

    if so, i'd have thought the answers obvious. maybe that's why i didn't
    bother answering.

    Quoted message said:

    Scroll down to messages 103-110. You responded to that exact subthread,
    so I know you were reading it. But you failed to answer the question.

    >> In bound vs. out bound, crossing pattern, and rim size all affect the
    >> angle in question. I don't see hubs marketed for each variation, and
    >> I don't see holes labeled for inbound and outbound spokes. Do small
    >> wheels (think recumbent) usually use the same hubs as diamond frame
    >> bikes? If so, do they have a much higher incidence of spoke breakage?

    > if you want to demonstrate something dave, do the math for the spoke
    > angle given that a hub hole may be larger diameter than the spoke and
    > seated in a flange of given thickness. then compare that to the stock
    > spoke angle of ~95°.

    You made the claim. It's your job to prove it. Here's the claim you
    made, in case you've forgotten:

    "the spoke elbow comes pre-formed with the best resultant angle and the
    hub flange is canted and drilled also to give the best resultant angle."

    You made no reservations about wheel size, lacing pattern, or any of the
    other things you tried to add in later when questioned. And what about
    dished wheels? Or rims with offset spoke beds?

    I'm looking forward to your response.


    unless you want a full custom hub, the economics don't support
    accommodating non-standard configurations.

    two hub pics for consideration:
    http://www.flickr.com/photos/38636024@N00/316202144/
    http://www.flickr.com/photos/38636024@N00/316202143/

    for the cynics, i didn't happen to have any 2.4mm rod about for the hub
    hole pic, but if you don't believe the hub holes are perpendicular to
    the flange, do this experiment yourself.

    On my XT rear hub, the outer faces of the flanges are canted, but the
    inner faces are perpendicular to the hub axle or very nearly so. (The same
    may be true of my LX front hub, but I'm much less sure; on the rear
    hub, the difference in canting between the inner and outer faces is
    unmistakable even when eyeballing it.)

    I can't find a picture of an XT hub that shows this, but if you go to the
    end of this pdf where there are a series of drawings of hubs, they all
    appear to have one canted face and one perpendicular face:

    http://www.dtswiss.com/data/files/MAN_EN_41201162428.pdf

    If the spoke holes were drilled perpendicular to the canted outer face, I
    would expect them to exit the 90-degree inner face at a point further from
    the edge of the flange. But both the outer and inner exit points appear to
    be the same distance from the edge. That leads me to believe that the
    holes are drilled parallel to the hub axle, contrary to the caption on the
    second photo you link to above.

    There may be a difference in the way the holes are beveled (if that's the
    right term) on the inside versus the outside, but not that I can see.

    The effect of the difference in canting is that the inbound spokes exit at
    what appears to be an optimized angle when their heads are seated squarely
    in the canted outer face (that is, when the heads lie flat against the
    face, with no lifting of any part of the circumference).

    However, when the outbound spokes are seated squarely against the
    90-degree inner face, they exit perpendicular to the hub axle, or nearly
    so.

    I'm not sure why the hub is designed that way. Is there a reason inbound
    spokes need to have their seating optimized more than outbound spokes?
    Maybe because the elbow angle tends to open up as they are pulled, whereas
    the angle of outbound spokes becomes more acute?

    In any event, this does seem to fly in the face of your argument that the
    spoke/hub combination results in an optimized spoke line.

    Quoted message said:


    for dave, no, there's nothing sinister about this hub being black or
    large flange. it just happened to be a virgin hub at the top of my
    parts box.

    Dear Jim,

    Here's a link to an archery physics page that others may be able to
    untangle and apply to bicycle wheels:

    http://www.mrfizzix.com/archery/bow.html

    Of course, things are complicated by the springiness of a round-curve
    pre-tensioned bicycle wheel versus the much straighter curve of the
    pre-tensioned bow, the different angles of a pair of spokes versus a
    bow-string, and the spoke crossing that's missing from a bow.

    But it looks like something to do with storing energy in a complicated
    springy structure. When the rim deforms sideways, it's bending like a
    bow. When the squeezed spoke bends the unsqueezed spoke at the
    crossing, it's doing the same thing in another plane.

    The result, for those like me who get lost in the calculations on the
    archery page, is that it's useless to try to calculate spoke tension
    increases according to absolute spoke deflection between the two
    springy points of the hub and the rim. A bicycle wheel is worthless as
    a makeshift tension gauge.

    You have to use a tension gauge, which isolates a short, straight span
    of spoke with two massively braced posts that reduce this unexpected
    behavior, much like a pipe-clamp, to very low levels. The tension
    gauge gives either a reading, either Park-style spring-needle mark or
    DT-style measured absolute deflection. Then you look up what the
    reading means in a calibration/conversion table for a spoke of that
    material, shape, and thickness.

    So far, no wheel measured with a tension gauge has shown more than
    about 55~65 pounds of tension increase for a 60-pound squeeze force.

    A spoke in a much more rigid pipe-clamp does a little better, with the
    tension increase measured at about ~90 pounds for a 60-lb squeeze
    force.

    At low squeeze forces created by adding 5-pound weights, the Park
    gauge repeatedly shows that the spoke tension in a bicycle wheel drops
    at first and returns to its original level only after the spoke has
    bent under 20 pounds of weights. The bicycle wheel acts so much like a
    springy archer's bow that the simple Park tool reveals the odd
    behavior.

    When the same weights are added to the same spoke in the rigid
    pipe-clamp rig, the Park gauge shows that the spoke tension rises
    (instead of dropping and returning to the original level). The pipe
    clamp is so rigid that the Park tool is probably not sensitive enough
    to reveal the initial drop in tension as the spoke bends.

    These details are worth repeating, since they've developed over many
    threads and posts.

    Cheers,

    Carl Fogel

  14. On Sat, 30 Dec 2006 13:11:27 -0700, [email hidden] wrote:

    Dear Gary,

    Whoops!

    Sorry, I wrote that reply not to your post, but to a post from Jim
    Beam post way off somewhere else in this thread.

    My reply ended up mistakenly attached to your post, probably because
    of my careless clicking.

    I tacked a copy onto Jim's post.

    Cheers,

    Carl Fogel

  15. Ron Ruff wrote:

    <cut>

    Quoted message said:


    About the Park gauge... I was quite surprised to discover that the DS
    spokes on my rear wheel were tensioned to 175kg! Yikes! Yes, I did that
    myself. I knew it was high tension, but I had no idea it was that high.
    It wasn't difficult to achieve even with a very cheap spoke wrench...
    maybe the grease on the nipples helped.

    Then I noticed that every other spoke hole was cracked... oh well, that
    rim was dented anyway...

    I have just bought a Park tensiometer as I had a rim crack (possibly
    due to overtensioning when I built the wheel originally), and, when
    replacing it, broke three spokes that went off like a machine gun,
    first the one I was tightening, then those next to it, breaking at
    about 2/3 of the way along. Obviously the tension in this wheel was
    too high.

    But, like you, I was surprised at just how high a tension my wheels had
    when measured.

    All that I have read seems to imply that, before you snap spokes either
    the wheel will "taco", or the nipples will become very hard to turn.

    Indeed "the bicycle wheel" p105 suggests finding the highest tension
    the rim will support by determining the tesnion at which it "tacos"
    when stress relieved. My experience shows that spokes may well break
    before that tension is reached.

    This was for a "standard" 36 spoke, socketed rim (Rigida Sputnik). The
    same page also says (referring to deep section rims) that "the tension
    of 36 spokes may not exceed the tension or the rim...tensioning is
    usually at the limit when the nipples can no longer be tightened
    easily". In my case the nipples still turned freely and the rim
    remianed true until the spokes went ping. This suggests to me that,
    contrary to what I had expected, spokes can be the weakest link in a
    wheel.

    My experience backs yours up. It can be surprisingly easy to reach
    tensions that may caus rim cracking and spoke breakage.

    With the aid of my newly acquired tensiometer I have rebuilt with
    butted spokes and stopped tensioning at 150Kg force on the drive side.
    If, as this thread suggests, the tool is a reliable guide, then theis
    should be plenty.

    Andrew Webster

  16. In article <[email hidden]>,

    (Tom Keats) said:

    In article <[email hidden]>,

    Michael Press said:

    In article
    <[email hidden]>,

    Quoted message said:

    On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>
    wrote:

    >
    >Michael Press wrote:
    >>
    >> Consistent and precise mean much the same thing.
    >
    >I think I understand your point. If the device was very consistent,
    >then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

    What is consistency in a laboratory?

    Precision is getting the same value each time you
    measure the same thing.

    That sounds to me more like a definition of consistency.

    Precision, as I learned about it, has to do with "degrees
    of accuracy," taking into consideration such things as
    the effects of multiplication and division on error,
    significant digits, rounding, and irrational numbers.

    Precision doesn't need to be any finer than the practical
    demands of what it's applied to, so precision is relative
    and arbitrary. "False precision" (e.g: use of insignificant
    digits) is a waste of time and effort.

    Consistency is not a technical term in laboratory technique.
    Search the web on the conjunction of the words
    {accuracy, precision, laboratory}.

    First hit.
    <http://scidiv.bcc.ctc.edu/Physics/Measure&sigfigs/B-Acc-Prec-Unc.html>

    --
    Michael Press

  17. In article
    <[email hidden]>,

    Quoted message said:

    On Sat, 30 Dec 2006 05:14:19 GMT, Michael Press <[email hidden]>

    Quoted message said:

    In article
    <[email hidden]>,

    Quoted message said:

    On 28 Dec 2006 00:09:19 -0800, "Ron Ruff" <[email hidden]>
    wrote:

    >
    >Michael Press wrote:
    >>
    >> Consistent and precise mean much the same thing.
    >
    >I think I understand your point. If the device was very consistent,
    >then it would be very precise...

    No.

    Accuracy, precision, and consistency are _different_ things.

    What is consistency in a laboratory?

    Precision is getting the same value each time you
    measure the same thing.

    No, that's consistency.

    Precision is a different thing.

    As is accuracy.

    (shakes head and mutters 'what are they teaching these young pups
    today...'😉

    Read 'em and weep, smalltimer.
    <http://scidiv.bcc.ctc.edu/Physics/Measure&sigfigs/B-Acc-Prec-Unc.html>

    --
    Michael Press

  18. Carl Fogel said:
    Quoted message said:
    Quoted message said:

    > If you are breaking non-drive side spokes, this indicates without
    > a doubt that they are [censored] spokes. (based on info from your
    > previous posts, that you don't weigh 400lbs,etc)

    Quoted message said:
    Quoted message said:
    Quoted message said:

    Even the best spokes fail if they are not formed to the hub and
    stress relieved. Don't push it off on the spoke manufacturer when
    it's the builder who needs to take measures to make the wheel
    durable.

    Quoted message said:
    Quoted message said:

    Stress relief is just going around the wheel sort of pinching the
    spokes?

    Quoted message said:

    Forgive me, but your innocent response is too good not to cross-post
    to rec.bicycles.tech.

    Don't be so condescending about finding an opening to present your
    belief in the misplaced experiments you performed to support your
    belief in stress relief. You are not forgiven.

    Quoted message said:

    While pinching spoke pairs together probably helps to seat the
    spokes in the hub and the nipples in the rim, tests showed no
    further residual stresses being relieved after ordinary spoke
    tension, even when tension was much higher than the typical 60-lb
    tension increase that other testing shows can be achieved by
    pinching.

    Consider that typically an outbound spoke is bent to yield when
    tightened after a wheel is laced. This is apparent from its elbow
    bend that was obtuse when new and acute after a wheel build. That the
    elbow that is raised to tensile yield during tensioning should be
    evident because all additional tension can only yield that portion of
    the spoke in the elbow further. It will remain at yield, there being
    no mechanism to make it less than that.

    Because no over-tensioning followed by relaxation (manually stretching
    spokes) is used, the elbow must be at yield in the finished wheel.
    Therefore, the residual stress from elbow modification remains with
    that spoke that is tensioned to less than yield stress in the absence
    of stress relieving.

    Your heating experiment was done on a relaxed spoke and does not
    reveal what the tension was on the outside of an elbow bend, for
    instance. If you raised your spoke tension to yield stress prior to
    relaxing it and heating, then it is evidence of stress relieving by
    momentary over-stress, nothing more.

    Quoted message said:

    I pinched spokes together on various wheels with known forces and
    measured the tension changes. Despite the impressive bending, the
    spoke tension rose only about 55~65 for a 60 lb pinch. (The bending
    was not due to the spokes being stretched by tremendous tension
    increases, but to the slack gained when the rims bent into faint N
    or Z shapes.)

    Any momentary overload will cause yielding in the portions of a spoke
    that are at tensile yield stress and relaxing that overload
    constitutes stress relief. I don't see what is not obvious about that
    process.

    Jobst Brandt

  19. Quoted message said:
    Carl Fogel said:
    Quoted message said:

    >> If you are breaking non-drive side spokes, this indicates without
    >> a doubt that they are [censored] spokes. (based on info from your
    >> previous posts, that you don't weigh 400lbs,etc)

    Quoted message said:
    Quoted message said:

    > Even the best spokes fail if they are not formed to the hub and
    > stress relieved. Don't push it off on the spoke manufacturer when
    > it's the builder who needs to take measures to make the wheel
    > durable.

    Quoted message said:
    Quoted message said:

    Stress relief is just going around the wheel sort of pinching the
    spokes?

    Quoted message said:

    Forgive me, but your innocent response is too good not to cross-post
    to rec.bicycles.tech.

    Don't be so condescending about finding an opening to present your
    belief in the misplaced experiments you performed to support your
    belief in stress relief. You are not forgiven.

    [snip]

    Dear Jobst,

    Don't be such a pompous, paranoid ass, particularly 11 days after the
    post first appeared.

    Cheers,

    Carl Fogel

  20. Quoted message said:
    Carl Fogel said:
    Quoted message said:

    >> If you are breaking non-drive side spokes, this indicates without
    >> a doubt that they are [censored] spokes. (based on info from your
    >> previous posts, that you don't weigh 400lbs,etc)

    Quoted message said:
    Quoted message said:

    > Even the best spokes fail if they are not formed to the hub and
    > stress relieved. Don't push it off on the spoke manufacturer when
    > it's the builder who needs to take measures to make the wheel
    > durable.

    Quoted message said:
    Quoted message said:

    Stress relief is just going around the wheel sort of pinching the
    spokes?

    Quoted message said:

    Forgive me, but your innocent response is too good not to cross-post
    to rec.bicycles.tech.

    Don't be so condescending about finding an opening to present your
    belief in the misplaced experiments you performed to support your
    belief in stress relief. You are not forgiven.

    Quoted message said:

    While pinching spoke pairs together probably helps to seat the
    spokes in the hub and the nipples in the rim, tests showed no
    further residual stresses being relieved after ordinary spoke
    tension, even when tension was much higher than the typical 60-lb
    tension increase that other testing shows can be achieved by
    pinching.

    Consider that typically an outbound spoke is bent to yield when
    tightened after a wheel is laced. This is apparent from its elbow
    bend that was obtuse when new and acute after a wheel build. That the
    elbow that is raised to tensile yield during tensioning should be
    evident because all additional tension can only yield that portion of
    the spoke in the elbow further. It will remain at yield, there being
    no mechanism to make it less than that.

    Because no over-tensioning followed by relaxation (manually stretching
    spokes) is used, the elbow must be at yield in the finished wheel.
    Therefore, the residual stress from elbow modification remains with
    that spoke that is tensioned to less than yield stress in the absence
    of stress relieving.

    Your heating experiment was done on a relaxed spoke and does not
    reveal what the tension was on the outside of an elbow bend, for
    instance. If you raised your spoke tension to yield stress prior to
    relaxing it and heating, then it is evidence of stress relieving by
    momentary over-stress, nothing more.

    Quoted message said:

    I pinched spokes together on various wheels with known forces and
    measured the tension changes. Despite the impressive bending, the
    spoke tension rose only about 55~65 for a 60 lb pinch. (The bending
    was not due to the spokes being stretched by tremendous tension
    increases, but to the slack gained when the rims bent into faint N
    or Z shapes.)

    Any momentary overload will cause yielding in the portions of a spoke
    that are at tensile yield stress and relaxing that overload
    constitutes stress relief. I don't see what is not obvious about that
    process.

    i'm an [ex] metallurgist, and i see nothing "obvious" about this
    supposition at all. you repeatedly prove know nothing about materials
    [particularly fatigue or deformation - metal yields to zero "brick
    dragging" b.s!!!!], you've done no testing, you have no data. you even
    have the temerity to claim "invention" of wheel building practice that
    dates before your birth. and yet here you are, years after being
    confronted with facts and data that would allow you to correct your
    mistakes, still in denial. you've even been asked to perform simple
    [cheap] industry standard testing that could /prove/ you correct if
    you're so damned confident, but you won't. why not?

    this is not a technology problem: this is an i.q. problem.

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